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      Excitation resolved color conversion of CdSe/ZnS core/shell quantum dot solids for hybrid white light emitting diodes

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      Author(s)
      Nizamoglu, S.
      Demir, Hilmi Volkan
      Date
      2009-04-28
      Source Title
      Journal of Applied Physics
      Print ISSN
      0021-8979
      Publisher
      American Institute of Physics
      Volume
      105
      Issue
      8
      Pages
      083112-1 - 083112-5
      Language
      English
      Type
      Article
      Item Usage Stats
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      Abstract
      In this paper, for their use as nanoluminophors on color-conversion white light emitting diodes (LEDs), we present spectrally resolved relative quantum efficiency and relative color (photon) conversion efficiency of CdSe/ZnS core/shell nanocrystal (NC) emitters in the solid-state film. We observe that both the averaged relative quantum efficiency and the averaged relative photon conversion efficiency of these NC solids increase with the increasing photon pump energy. Therefore, the excitation LED platform emitting at shorter wavelengths facilitates such NC luminophor solids to be more efficiently pumped optically. Furthermore, we investigate the spectral time-resolved spectroscopy of NCs in solution and in film with 0.4-2.4 nmol integrated number of NCs in the spectral range of 610-660 nm. We observe that the average lifetime of NCs increases toward longer wavelengths as the number of in-film NCs increases. With the increased amount of NCs, the average lifetime increases even further and the emission of NCs is shifted further toward red. This is attributed to the enhanced nonradiative energy transfer between these NCs due to the inhomogeneous size distribution. Thus, in principle, for fine tuning of the collective color of NCs for color-conversion LEDs, it is important to control the energy transfer by changing the integrated number of NCs.
      Keywords
      Cadmium Compounds
      Ii-vi semiconductors
      Light emitting diodes
      Nanostructured materials
      Phosphors
      Selenium compounds
      Semiconductor thin films
      Time resolved spectra
      Wide band gap semiconductors
      Zinc compounds
      Permalink
      http://hdl.handle.net/11693/13462
      Published Version (Please cite this version)
      http://dx.doi.org/10.1063/1.3109151
      Collections
      • Department of Electrical and Electronics Engineering 4011
      • Department of Physics 2550
      • Institute of Materials Science and Nanotechnology (UNAM) 2256
      • Nanotechnology Research Center (NANOTAM) 1179
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